首页> 外文会议>Annual Conference on Neural Information Processing Systems(NIPS); 20051205-10; British Columbia(CA) >Integrate-and-Fire models with adaptation are good enough: predicting spike times under random current injection
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Integrate-and-Fire models with adaptation are good enough: predicting spike times under random current injection

机译:具有自适应功能的集成和发射模型已经足够好:预测随机电流注入下的尖峰时间

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Integrate-and-Fire-type models are usually criticized because of their simplicity. On the other hand, the Integrate-and-Fire model is the basis of most of the theoretical studies on spiking neuron models. Here, we develop a sequential procedure to quantitatively evaluate an equivalent Integrate-and-Fire-type model based on intracellular recordings of cortical pyramidal neurons. We find that the resulting effective model is sufficient to predict the spike train of the real pyramidal neuron with high accuracy. In in vivo-like regimes, predicted and recorded traces are almost indistinguishable and a significant part of the spikes can be predicted at the correct timing. Slow processes like spike-frequency adaptation are shown to be a key feature in this context since they are necessary for the model to connect between different driving regimes.
机译:集成即火类型的模型通常因其简单性而受到批评。另一方面,“积分并发射”模型是尖峰神经元模型的大多数理论研究的基础。在这里,我们开发了一个顺序过程,以基于皮质锥体神经元的细胞内记录定量评估一个等效的“整合并发射”类型的模型。我们发现,所产生的有效模型足以准确预测真实锥体神经元的尖峰序列。在类似体内的方案中,预测和记录的痕迹几乎无法区分,并且可以在正确的时间预测大部分的峰值。在这种情况下,像尖峰频率适应这样的慢速过程显示为关键特征,因为它们对于模型在不同驾驶状态之间的连接是必需的。

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